Download presentation
Presentation is loading. Please wait.
1
Find: f(4[hr]) [cm/hr] 0.25 0.50 0.75 1.00 saturation 0% 100%
Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi 0.25 0.50 0.75 1.00 Find the infiltration rate of the soil after 4 hours, in centimeters per hour. [pause] In this problem, ---
![Find: f(4[hr]) [cm/hr] saturation 0% 100%](http://slideplayer.com/slide/15073577/91/images/1/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+saturation+0%25+100%25.jpg "Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi Find the infiltration rate of the soil after 4 hours, in centimeters per hour. [pause] In this problem, ---")
2
Find: f(4[hr]) [cm/hr] 0.25 0.50 0.75 1.00 saturation 0% 100%
Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi 0.25 0.50 0.75 1.00 a sandy clay soil, with an initial saturation of 27%, undergoes continuous ponding, with a negligible ponding depth.
![Find: f(4[hr]) [cm/hr] saturation 0% 100%](http://slideplayer.com/slide/15073577/91/images/2/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+saturation+0%25+100%25.jpg "Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi a sandy clay soil, with an initial saturation of 27%, undergoes continuous ponding, with a negligible ponding depth.")
3
Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt
sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi The Green-Ampt equation for infiltration rate, is --- ψ * Δθ F(t) f(t)=K * +1
![Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt](http://slideplayer.com/slide/15073577/91/images/3/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%2A+%CE%94%CE%B8+saturation+0%25+100%25+Green-Ampt.jpg "sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. The Green-Ampt equation for infiltration rate, is --- ψ * Δθ. F(t) f(t)=K. * +1.")
4
Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt
sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi the infiltration rate, at time t, equals, --- ψ * Δθ f(t)=K +1 * F(t) infiltration rate
![Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt](http://slideplayer.com/slide/15073577/91/images/4/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%2A+%CE%94%CE%B8+saturation+0%25+100%25+Green-Ampt.jpg "sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. the infiltration rate, at time t, equals, --- ψ * Δθ. f(t)=K. +1. * F(t) infiltration. rate.")
5
Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt
sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi hydraulic conductivity the hydraulic conductivity, times the quantity, --- ψ * Δθ f(t)=K +1 * F(t) infiltration rate
![Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt](http://slideplayer.com/slide/15073577/91/images/5/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%2A+%CE%94%CE%B8+saturation+0%25+100%25+Green-Ampt.jpg "sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. hydraulic. conductivity. the hydraulic conductivity, times the quantity, --- ψ * Δθ. f(t)=K. +1. * F(t) infiltration. rate.")
6
Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt
sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi hydraulic conductivity The soil suction head, psi, times, --- ψ * Δθ f(t)=K +1 * F(t) infiltration suction rate head
![Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt](http://slideplayer.com/slide/15073577/91/images/6/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%2A+%CE%94%CE%B8+saturation+0%25+100%25+Green-Ampt.jpg "sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. hydraulic. conductivity. The soil suction head, psi, times, --- ψ * Δθ. f(t)=K. +1. * F(t) infiltration. suction. rate. head.")
7
Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt
sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi hydraulic conductivity change in moisture the change in moisture content when the wetting front passes dry soil, delta theta, divided by, --- ψ * Δθ f(t)=K +1 * content F(t) infiltration suction rate head
![Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt](http://slideplayer.com/slide/15073577/91/images/7/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%2A+%CE%94%CE%B8+saturation+0%25+100%25+Green-Ampt.jpg "sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. hydraulic. conductivity. change in. moisture. the change in moisture content when the wetting front passes dry soil, delta theta, divided by, --- ψ * Δθ. f(t)=K. +1. * content. F(t) infiltration. suction. rate. head.")
8
Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt
sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi hydraulic conductivity change in moisture the cumulative infiltration, at time t, plus one. ψ * Δθ f(t)=K +1 * content F(t) cumulative infiltration suction infiltration rate head
![Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt](http://slideplayer.com/slide/15073577/91/images/8/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%2A+%CE%94%CE%B8+saturation+0%25+100%25+Green-Ampt.jpg "sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. hydraulic. conductivity. change in. moisture. the cumulative infiltration, at time t, plus one. ψ * Δθ. f(t)=K. +1. * content. F(t) cumulative. infiltration. suction. infiltration. rate. head.")
9
Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt
sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi hydraulic conductivity change in moisture Infiltration parameters, for Green-Ampt equations, can be looked up, based on soil type. For a sandy clay, --- ψ * Δθ f(t)=K +1 * content F(t) cumulative infiltration suction infiltration rate head
![Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt](http://slideplayer.com/slide/15073577/91/images/9/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%2A+%CE%94%CE%B8+saturation+0%25+100%25+Green-Ampt.jpg "sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. hydraulic. conductivity. change in. moisture. Infiltration parameters, for Green-Ampt equations, can be looked up, based on soil type. For a sandy clay, --- ψ * Δθ. f(t)=K. +1. * content. F(t) cumulative. infiltration. suction. infiltration. rate. head.")
10
Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt
sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi hydraulic conductivity change in cm K=0.060 moisture the hydraulic conductivity is centimeters per hour, --- ψ * Δθ hr f(t)=K +1 * content F(t) cumulative infiltration suction infiltration rate head
![Find: f(4[hr]) [cm/hr] +1 ψ * Δθ saturation 0% 100% Green-Ampt](http://slideplayer.com/slide/15073577/91/images/10/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%2A+%CE%94%CE%B8+saturation+0%25+100%25+Green-Ampt.jpg "sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. hydraulic. conductivity. change in. cm. K= moisture. the hydraulic conductivity is centimeters per hour, --- ψ * Δθ. hr. f(t)=K. +1. * content. F(t) cumulative. infiltration. suction. infiltration. rate. head.")
11
Find: f(4[hr]) [cm/hr] +1 ψ * Δθ ψ =23.90 [cm] saturation 0% 100%
Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi hydraulic conductivity change in cm K=0.060 moisture the suction head is centimeters, --- ψ * Δθ hr f(t)=K +1 * content F(t) ψ =23.90 [cm] cumulative infiltration suction infiltration rate head
![Find: f(4[hr]) [cm/hr] +1 ψ * Δθ ψ =23.90 [cm] saturation 0% 100%](http://slideplayer.com/slide/15073577/91/images/11/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%2A+%CE%94%CE%B8+%CF%88+%3D23.90+%5Bcm%5D+saturation+0%25+100%25.jpg "Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. hydraulic. conductivity. change in. cm. K= moisture. the suction head is centimeters, --- ψ * Δθ. hr. f(t)=K. +1. * content. F(t) ψ =23.90 [cm] cumulative. infiltration. suction. infiltration. rate. head.")
12
Find: f(4[hr]) [cm/hr] +1 ψ * Δθ ψ =23.90 [cm] θe =0.321 saturation 0%
100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi hydraulic conductivity change in cm K=0.060 moisture and the effective porosity equals [pause] The change in moisture content can be determined by multiplying --- ψ * Δθ hr f(t)=K +1 * content F(t) ψ =23.90 [cm] cumulative θe =0.321 infiltration suction infiltration rate head
![Find: f(4[hr]) [cm/hr] +1 ψ * Δθ ψ =23.90 [cm] θe =0.321 saturation 0%](http://slideplayer.com/slide/15073577/91/images/12/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%2A+%CE%94%CE%B8+%CF%88+%3D23.90+%5Bcm%5D+%CE%B8e+%3D0.321+saturation+0%25.jpg "100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. hydraulic. conductivity. change in. cm. K= moisture. and the effective porosity equals [pause] The change in moisture content can be determined by multiplying --- ψ * Δθ. hr. f(t)=K. +1. * content. F(t) ψ =23.90 [cm] cumulative. θe = infiltration. suction. infiltration. rate. head.")
13
Find: f(4[hr]) [cm/hr] Δθ=(1-θi) * θe +1 ψ * Δθ ψ =23.90 [cm]
saturation 0% 100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi change in cm K=0.060 moisture 1 minus the initial saturation, by the effective porosity. ψ * Δθ hr f(t)=K +1 * content F(t) ψ =23.90 [cm] Δθ=(1-θi) * θe θe =0.321
![Find: f(4[hr]) [cm/hr] Δθ=(1-θi) * θe +1 ψ * Δθ ψ =23.90 [cm]](http://slideplayer.com/slide/15073577/91/images/13/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%CE%94%CE%B8%3D%281-%CE%B8i%29+%2A+%CE%B8e+%2B1+%CF%88+%2A+%CE%94%CE%B8+%CF%88+%3D23.90+%5Bcm%5D.jpg "saturation. 0% 100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. change in. cm. K= moisture. 1 minus the initial saturation, by the effective porosity. ψ * Δθ. hr. f(t)=K. +1. * content. F(t) ψ =23.90 [cm] Δθ=(1-θi) * θe. θe =")
14
Find: f(4[hr]) [cm/hr] Δθ=(1-θi) * θe Δθ=(1-0.27) * 0.321 +1 ψ * Δθ
saturation 0% 100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi change in cm K=0.060 moisture So 1 minus 0.27, times equals a delta theta of --- ψ * Δθ hr f(t)=K +1 * content F(t) ψ =23.90 [cm] Δθ=(1-θi) * θe θe =0.321 Δθ=(1-0.27) * 0.321
![Find: f(4[hr]) [cm/hr] Δθ=(1-θi) * θe Δθ=(1-0.27) * ψ * Δθ](http://slideplayer.com/slide/15073577/91/images/14/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%CE%94%CE%B8%3D%281-%CE%B8i%29+%2A+%CE%B8e+%CE%94%CE%B8%3D%281-0.27%29+%2A+%CF%88+%2A+%CE%94%CE%B8.jpg "saturation. 0% 100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. change in. cm. K= moisture. So 1 minus 0.27, times equals a delta theta of --- ψ * Δθ. hr. f(t)=K. +1. * content. F(t) ψ =23.90 [cm] Δθ=(1-θi) * θe. θe = Δθ=(1-0.27) *")
15
Find: f(4[hr]) [cm/hr] Δθ=(1-θi) * θe Δθ=(1-0.27) * 0.321 Δθ=0.2343 +1
saturation 0% 100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi change in cm K=0.060 moisture [pause] So already, we know the hydraulic conductivity, --- ψ * Δθ hr f(t)=K +1 * content F(t) ψ =23.90 [cm] Δθ=(1-θi) * θe θe =0.321 Δθ=(1-0.27) * 0.321 Δθ=0.2343
![Find: f(4[hr]) [cm/hr] Δθ=(1-θi) * θe Δθ=(1-0.27) * Δθ=](http://slideplayer.com/slide/15073577/91/images/15/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%CE%94%CE%B8%3D%281-%CE%B8i%29+%2A+%CE%B8e+%CE%94%CE%B8%3D%281-0.27%29+%2A+%CE%94%CE%B8%3D.jpg "saturation. 0% 100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. change in. cm. K= moisture [pause] So already, we know the hydraulic conductivity, --- ψ * Δθ. hr. f(t)=K. +1. * content. F(t) ψ =23.90 [cm] Δθ=(1-θi) * θe. θe = Δθ=(1-0.27) * Δθ=")
16
Find: f(4[hr]) [cm/hr] +1 ψ * Δθ ψ =23.90 [cm] θe = 0.321 Δθ = 0.2343
saturation 0% 100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi hydraulic conductivity change in cm K=0.060 moisture suction head, and change in moisture content. The last unknown variable is --- ψ * Δθ hr f(t)=K +1 * content F(t) ψ =23.90 [cm] cumulative θe = 0.321 infiltration suction infiltration rate head Δθ =
![Find: f(4[hr]) [cm/hr] +1 ψ * Δθ ψ =23.90 [cm] θe = Δθ =](http://slideplayer.com/slide/15073577/91/images/16/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%2A+%CE%94%CE%B8+%CF%88+%3D23.90+%5Bcm%5D+%CE%B8e+%3D+%CE%94%CE%B8+%3D.jpg "saturation. 0% 100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. hydraulic. conductivity. change in. cm. K= moisture. suction head, and change in moisture content. The last unknown variable is --- ψ * Δθ. hr. f(t)=K. +1. * content. F(t) ψ =23.90 [cm] cumulative. θe = infiltration. suction. infiltration. rate. head. Δθ =")
17
Find: f(4[hr]) [cm/hr] +1 ψ * Δθ ψ =23.90 [cm] θe = 0.321 Δθ = 0.2343
saturation 0% 100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding ho negligible θi hydraulic conductivity change in cm K=0.060 moisture the cumulative infiltration, capital F sub t. [pause] The cumulative infiltrate, at a time t, equals --- ψ * Δθ hr f(t)=K +1 * content F(t) ψ =23.90 [cm] cumulative θe = 0.321 infiltration suction infiltration rate head Δθ =
![Find: f(4[hr]) [cm/hr] +1 ψ * Δθ ψ =23.90 [cm] θe = Δθ =](http://slideplayer.com/slide/15073577/91/images/17/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%2A+%CE%94%CE%B8+%CF%88+%3D23.90+%5Bcm%5D+%CE%B8e+%3D+%CE%94%CE%B8+%3D.jpg "saturation. 0% 100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. ho negligible. θi. hydraulic. conductivity. change in. cm. K= moisture. the cumulative infiltration, capital F sub t. [pause] The cumulative infiltrate, at a time t, equals --- ψ * Δθ. hr. f(t)=K. +1. * content. F(t) ψ =23.90 [cm] cumulative. θe = infiltration. suction. infiltration. rate. head. Δθ =")
18
Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] θe = 0.321 Δθ = 0.2343 F
saturation 0% 100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding cumulative ho negligible θi infiltration cm F (t) K=0.060 F(t) = K * t + ψ * Δθ * ln 1+ the hydraulic conductivity, times the time, plus --- hr ψ * Δθ ψ =23.90 [cm] time θe = 0.321 hydraulic conductivity Δθ =
![Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] θe = Δθ = F](http://slideplayer.com/slide/15073577/91/images/18/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%CF%88+%2A+%CE%94%CE%B8+%CF%88+%3D23.90+%5Bcm%5D+%CE%B8e+%3D+%CE%94%CE%B8+%3D+F.jpg "saturation. 0% 100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. cumulative. ho negligible. θi. infiltration. cm. F. (t) K= F(t) = K * t + ψ * Δθ * ln. 1+ the hydraulic conductivity, times the time, plus --- hr. ψ * Δθ. ψ =23.90 [cm] time. θe = hydraulic. conductivity. Δθ =")
19
Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] θe = 0.321 Δθ = 0.2343 F
saturation 0% 100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding cumulative ho negligible θi infiltration cm F (t) K=0.060 F(t) = K * t + ψ * Δθ * ln 1+ the suction head times the change in moisture content times, --- hr ψ * Δθ ψ =23.90 [cm] time change in suction θe = 0.321 hydraulic moisture head conductivity content Δθ =
![Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] θe = Δθ = F](http://slideplayer.com/slide/15073577/91/images/19/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%CF%88+%2A+%CE%94%CE%B8+%CF%88+%3D23.90+%5Bcm%5D+%CE%B8e+%3D+%CE%94%CE%B8+%3D+F.jpg "saturation. 0% 100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. cumulative. ho negligible. θi. infiltration. cm. F. (t) K= F(t) = K * t + ψ * Δθ * ln. 1+ the suction head times the change in moisture content times, --- hr. ψ * Δθ. ψ =23.90 [cm] time. change in. suction. θe = hydraulic. moisture. head. conductivity. content. Δθ =")
20
Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] θe = 0.321 Δθ = 0.2343 F
saturation 0% 100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding cumulative ho negligible θi infiltration cm F (t) K=0.060 F(t) = K * t + ψ * Δθ * ln 1+ the natural logarithm of the quantity 1 plus, --- hr ψ * Δθ ψ =23.90 [cm] time change in suction θe = 0.321 hydraulic moisture head conductivity content Δθ =
![Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] θe = Δθ = F](http://slideplayer.com/slide/15073577/91/images/20/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%CF%88+%2A+%CE%94%CE%B8+%CF%88+%3D23.90+%5Bcm%5D+%CE%B8e+%3D+%CE%94%CE%B8+%3D+F.jpg "saturation. 0% 100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. cumulative. ho negligible. θi. infiltration. cm. F. (t) K= F(t) = K * t + ψ * Δθ * ln. 1+ the natural logarithm of the quantity 1 plus, --- hr. ψ * Δθ. ψ =23.90 [cm] time. change in. suction. θe = hydraulic. moisture. head. conductivity. content. Δθ =")
21
Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] θe = 0.321 Δθ = 0.2343 F
saturation 0% 100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding cumulative ho negligible θi infiltration cm F (t) K=0.060 F(t) = K * t + ψ * Δθ * ln 1+ the cumulative infiltration divided by --- hr ψ * Δθ ψ =23.90 [cm] time change in suction θe = 0.321 hydraulic moisture head conductivity content Δθ =
![Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] θe = Δθ = F](http://slideplayer.com/slide/15073577/91/images/21/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%CF%88+%2A+%CE%94%CE%B8+%CF%88+%3D23.90+%5Bcm%5D+%CE%B8e+%3D+%CE%94%CE%B8+%3D+F.jpg "saturation. 0% 100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. cumulative. ho negligible. θi. infiltration. cm. F. (t) K= F(t) = K * t + ψ * Δθ * ln. 1+ the cumulative infiltration divided by --- hr. ψ * Δθ. ψ =23.90 [cm] time. change in. suction. θe = hydraulic. moisture. head. conductivity. content. Δθ =")
22
Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] θe = 0.321 Δθ = 0.2343 F
saturation 0% 100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding cumulative ho negligible θi infiltration cm F (t) K=0.060 F(t) = K * t + ψ * Δθ * ln 1+ the suction head times the change in moisture content. [pause] hr ψ * Δθ ψ =23.90 [cm] time change in suction θe = 0.321 hydraulic moisture head conductivity content Δθ =
![Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] θe = Δθ = F](http://slideplayer.com/slide/15073577/91/images/22/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%CF%88+%2A+%CE%94%CE%B8+%CF%88+%3D23.90+%5Bcm%5D+%CE%B8e+%3D+%CE%94%CE%B8+%3D+F.jpg "saturation. 0% 100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. cumulative. ho negligible. θi. infiltration. cm. F. (t) K= F(t) = K * t + ψ * Δθ * ln. 1+ the suction head times the change in moisture content. [pause] hr. ψ * Δθ. ψ =23.90 [cm] time. change in. suction. θe = hydraulic. moisture. head. conductivity. content. Δθ =")
23
Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] θe = 0.321 Δθ = 0.2343 F
saturation 0% 100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding 4 [hr] ho negligible θi cm F (4) K=0.060 F(4) = K * t + ψ * Δθ * ln 1+ Plugging in the known variables, the equation reduces down to --- hr ψ * Δθ ψ =23.90 [cm] θe = 0.321 Δθ =
![Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] θe = Δθ = F](http://slideplayer.com/slide/15073577/91/images/23/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%CF%88+%2A+%CE%94%CE%B8+%CF%88+%3D23.90+%5Bcm%5D+%CE%B8e+%3D+%CE%94%CE%B8+%3D+F.jpg "saturation. 0% 100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. 4 [hr] ho negligible. θi. cm. F. (4) K= F(4) = K * t + ψ * Δθ * ln. 1+ Plugging in the known variables, the equation reduces down to --- hr. ψ * Δθ. ψ =23.90 [cm] θe = Δθ =")
24
Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] Δθ = 0.2343 F (4)
saturation 0% 100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding 4 [hr] ho negligible θi cm F (4) K=0.060 hr F(4) = K * t + ψ * Δθ * ln 1+ F sub t equals 0.24 centimeters, plus 5.6 centimeters times the natural logarithm of 1 plus F sub t divided by 5.6 centimeters. ψ * Δθ ψ =23.90 [cm] Δθ = F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] Δθ = F (4)](http://slideplayer.com/slide/15073577/91/images/24/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%CF%88+%2A+%CE%94%CE%B8+%CF%88+%3D23.90+%5Bcm%5D+%CE%94%CE%B8+%3D+F+%284%29.jpg "saturation. 0% 100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. 4 [hr] ho negligible. θi. cm. F. (4) K= hr. F(4) = K * t + ψ * Δθ * ln. 1+ F sub t equals 0.24 centimeters, plus 5.6 centimeters times the natural logarithm of 1 plus F sub t divided by 5.6 centimeters. ψ * Δθ. ψ =23.90 [cm] Δθ = F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
25
Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] Δθ = 0.2343 F (4)
saturation 0% 100% Green-Ampt sandy clay η θi=27.0% Δθ continuous ponding 4 [hr] ho negligible θi cm F (4) K=0.060 hr F(4) = K * t + ψ * Δθ * ln 1+ We notice the the cumulative infiltration occurs twice in the equation, once in linear, and once in log. ψ * Δθ ψ =23.90 [cm] Δθ = cumulative infiltration F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] ψ * Δθ ψ =23.90 [cm] Δθ = F (4)](http://slideplayer.com/slide/15073577/91/images/25/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%CF%88+%2A+%CE%94%CE%B8+%CF%88+%3D23.90+%5Bcm%5D+%CE%94%CE%B8+%3D+F+%284%29.jpg "saturation. 0% 100% Green-Ampt. sandy clay. η. θi=27.0% Δθ. continuous ponding. 4 [hr] ho negligible. θi. cm. F. (4) K= hr. F(4) = K * t + ψ * Δθ * ln. 1+ We notice the the cumulative infiltration occurs twice in the equation, once in linear, and once in log. ψ * Δθ. ψ =23.90 [cm] Δθ = cumulative infiltration. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
26
Find: f(4[hr]) [cm/hr] F (4) 1+ saturation 0% 100% η LHS RHS next F Δθ
Therefore, we’ll have to solve the problem iteratively, unless we have access to a special calculator. cumulative infiltration F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] F (4) 1+ saturation 0% 100% η LHS RHS next F Δθ](http://slideplayer.com/slide/15073577/91/images/26/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+F+%284%29+1%2B+saturation+0%25+100%25+%CE%B7+LHS+RHS+next+F+%CE%94%CE%B8.jpg "Therefore, we’ll have to solve the problem iteratively, unless we have access to a special calculator. cumulative infiltration. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
27
Find: f(4[hr]) [cm/hr] (t) F (4) 1+ saturation 0% 100% η LHS RHS
next F (t) Δθ θi value If we had a graphing calculator, we could plot --- F (t) cumulative infiltration F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) F (4) 1+ saturation 0% 100% η LHS RHS](http://slideplayer.com/slide/15073577/91/images/27/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+F+%284%29+1%2B+saturation+0%25+100%25+%CE%B7+LHS+RHS.jpg "next F. (t) Δθ. θi. value. If we had a graphing calculator, we could plot --- F. (t) cumulative infiltration. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
28
Find: f(4[hr]) [cm/hr] (t) F (4) 1+ saturation 0% 100% η LHS RHS
next F (t) Δθ θi LHS value the left hand side of the equation as a function of F sub t, and --- F (t) cumulative infiltration F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) F (4) 1+ saturation 0% 100% η LHS RHS](http://slideplayer.com/slide/15073577/91/images/28/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+F+%284%29+1%2B+saturation+0%25+100%25+%CE%B7+LHS+RHS.jpg "next F. (t) Δθ. θi. LHS. value. the left hand side of the equation as a function of F sub t, and --- F. (t) cumulative infiltration. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
29
Find: f(4[hr]) [cm/hr] (t) F (4) 1+ saturation 0% 100% η LHS RHS
next F (t) Δθ θi LHS value RHS the right hand side of the equation as a function of F sub t, and --- F (t) cumulative infiltration F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) F (4) 1+ saturation 0% 100% η LHS RHS](http://slideplayer.com/slide/15073577/91/images/29/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+F+%284%29+1%2B+saturation+0%25+100%25+%CE%B7+LHS+RHS.jpg "next F. (t) Δθ. θi. LHS. value. RHS. the right hand side of the equation as a function of F sub t, and --- F. (t) cumulative infiltration. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
30
Find: f(4[hr]) [cm/hr] (t) F (4) 1+ saturation 0% 100% η LHS RHS
next F (t) Δθ θi LHS value RHS the intersection point would be the correct value --- F (t) cumulative infiltration F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) F (4) 1+ saturation 0% 100% η LHS RHS](http://slideplayer.com/slide/15073577/91/images/30/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+F+%284%29+1%2B+saturation+0%25+100%25+%CE%B7+LHS+RHS.jpg "next F. (t) Δθ. θi. LHS. value. RHS. the intersection point would be the correct value --- F. (t) cumulative infiltration. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
31
Find: f(4[hr]) [cm/hr] (t) F (4) 1+ saturation 0% 100% η LHS RHS
next F (t) Δθ θi LHS value RHS for the cumulative infiltration. [pause] To solve the problem by hand, we’ll begin by simply --- F (t) cumulative infiltration F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) F (4) 1+ saturation 0% 100% η LHS RHS](http://slideplayer.com/slide/15073577/91/images/31/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+F+%284%29+1%2B+saturation+0%25+100%25+%CE%B7+LHS+RHS.jpg "next F. (t) Δθ. θi. LHS. value. RHS. for the cumulative infiltration. [pause] To solve the problem by hand, we’ll begin by simply --- F. (t) cumulative infiltration. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
32
Find: f(4[hr]) [cm/hr] (t) F (4) 1+ saturation 0% 100% F(4) = ? η LHS
RHS next F (t) Δθ θi LHS value RHS guessing the cumulative infiltration in the soil, after 4 hours of continuous ponding. Since the soil is a sandy clay, we’ll guess --- F (t) cumulative infiltration F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) F (4) 1+ saturation 0% 100% F(4) = η LHS](http://slideplayer.com/slide/15073577/91/images/32/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+F+%284%29+1%2B+saturation+0%25+100%25+F%284%29+%3D+%CE%B7+LHS.jpg "RHS. next F. (t) Δθ. θi. LHS. value. RHS. guessing the cumulative infiltration in the soil, after 4 hours of continuous ponding. Since the soil is a sandy clay, we’ll guess --- F. (t) cumulative infiltration. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
33
Find: f(4[hr]) [cm/hr] (t) F (4) 1+ initial guess saturation 0% 100%
F(4) = 3 [cm] η LHS RHS next F (t) Δθ θi LHS value RHS 3 centimeters of infiltration. [pause] Then we’ll plug this value into --- F (t) cumulative infiltration F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) F (4) 1+ initial guess saturation 0% 100%](http://slideplayer.com/slide/15073577/91/images/33/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+F+%284%29+1%2B+initial+guess+saturation+0%25+100%25.jpg "F(4) = 3 [cm] η. LHS. RHS. next F. (t) Δθ. θi. LHS. value. RHS. 3 centimeters of infiltration. [pause] Then we’ll plug this value into --- F. (t) cumulative infiltration. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
34
Find: f(4[hr]) [cm/hr] (t) F (4) 1+ initial guess saturation 0% 100%
F(4) = 3 [cm] η LHS RHS next F (t) Δθ θi LHS value RHS our equation and solve the --- F (t) cumulative infiltration F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) F (4) 1+ initial guess saturation 0% 100%](http://slideplayer.com/slide/15073577/91/images/34/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+F+%284%29+1%2B+initial+guess+saturation+0%25+100%25.jpg "F(4) = 3 [cm] η. LHS. RHS. next F. (t) Δθ. θi. LHS. value. RHS. our equation and solve the --- F. (t) cumulative infiltration. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
35
Find: f(4[hr]) [cm/hr] (t) LHS F (4) 1+ initial guess saturation 0%
100% F(4) = 3 [cm] η LHS RHS next F (t) Δθ θi LHS value RHS left hand side of the equation, which is just the cumulative infiltration itself, 3, --- F (t) LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) LHS F (4) 1+ initial guess saturation 0%](http://slideplayer.com/slide/15073577/91/images/35/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+LHS+F+%284%29+1%2B+initial+guess+saturation+0%25.jpg "100% F(4) = 3 [cm] η. LHS. RHS. next F. (t) Δθ. θi. LHS. value. RHS. left hand side of the equation, which is just the cumulative infiltration itself, 3, --- F. (t) LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
36
Find: f(4[hr]) [cm/hr] (t) LHS F (4) 1+ initial guess saturation 0%
100% F(4) = 3 [cm] η LHS RHS next F (t) Δθ 3.00 θi LHS value RHS then we’ll solve the right hand side of the equation, F (t) LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) LHS F (4) 1+ initial guess saturation 0%](http://slideplayer.com/slide/15073577/91/images/36/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+LHS+F+%284%29+1%2B+initial+guess+saturation+0%25.jpg "100% F(4) = 3 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS. value. RHS. then we’ll solve the right hand side of the equation, F. (t) LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
37
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ initial guess saturation
0% 100% F(4) = 3 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS value RHS which equals 2.64, when we guess--- F (t) RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ initial guess saturation](http://slideplayer.com/slide/15073577/91/images/37/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+initial+guess+saturation.jpg "0% 100% F(4) = 3 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS. value. RHS. which equals 2.64, when we guess--- F. (t) RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
38
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ initial guess saturation
0% 100% F(4) = 3 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS value RHS 3 centimeters for the cumulative infiltration. [pause] From this first iteration, we notice --- F (t) 3 [cm] RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ initial guess saturation](http://slideplayer.com/slide/15073577/91/images/38/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+initial+guess+saturation.jpg "0% 100% F(4) = 3 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS. value. RHS. 3 centimeters for the cumulative infiltration. [pause] From this first iteration, we notice --- F. (t) 3 [cm] RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
39
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ initial guess saturation
0% 100% F(4) = 3 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS value RHS the left hand side of the equation is greater than the right hand side of the equation. F (t) 3 [cm] RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ initial guess saturation](http://slideplayer.com/slide/15073577/91/images/39/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+initial+guess+saturation.jpg "0% 100% F(4) = 3 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS. value. RHS. the left hand side of the equation is greater than the right hand side of the equation. F. (t) 3 [cm] RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
40
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ initial guess saturation
0% 100% F(4) = 3 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS value RHS Looking at the graph, this condition is true when the guess for the cumulative infiltration, F sub t, too high. F (t) RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ initial guess saturation](http://slideplayer.com/slide/15073577/91/images/40/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+initial+guess+saturation.jpg "0% 100% F(4) = 3 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS. value. RHS. Looking at the graph, this condition is true when the guess for the cumulative infiltration, F sub t, too high. F. (t) RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
41
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ initial guess saturation
0% 100% F(4) = 3 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS value RHS So our second guess will be less than 3 centimeters. [pause] F (t) RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ initial guess saturation](http://slideplayer.com/slide/15073577/91/images/41/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+initial+guess+saturation.jpg "0% 100% F(4) = 3 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS. value. RHS. So our second guess will be less than 3 centimeters. [pause] F. (t) RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
42
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ second guess saturation 0%
100% F(4) = 1.5 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS value RHS Using a second guess of 1.5 centimeters, --- F (t) RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ second guess saturation 0%](http://slideplayer.com/slide/15073577/91/images/42/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+second+guess+saturation+0%25.jpg "100% F(4) = 1.5 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS. value. RHS. Using a second guess of 1.5 centimeters, --- F. (t) RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
43
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ second guess saturation 0%
100% F(4) = 1.5 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS 1.50 value RHS the left hand side of the equation is 1.50 centimeters, --- F (t) RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ second guess saturation 0%](http://slideplayer.com/slide/15073577/91/images/43/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+second+guess+saturation+0%25.jpg "100% F(4) = 1.5 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS value. RHS. the left hand side of the equation is 1.50 centimeters, --- F. (t) RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
44
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ second guess saturation 0%
100% F(4) = 1.5 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS 1.50 1.57 value RHS and the right hand side of the equation computes to 1.57 centimeters. [pause] Now we have a situation where, --- F (t) RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ second guess saturation 0%](http://slideplayer.com/slide/15073577/91/images/44/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+second+guess+saturation+0%25.jpg "100% F(4) = 1.5 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS value. RHS. and the right hand side of the equation computes to 1.57 centimeters. [pause] Now we have a situation where, --- F. (t) RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
45
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ second guess saturation 0%
100% F(4) = 1.5 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS 1.50 1.57 value RHS the left hand side of the equation is less than the right hand side of the equation, --- F (t) RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ second guess saturation 0%](http://slideplayer.com/slide/15073577/91/images/45/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+second+guess+saturation+0%25.jpg "100% F(4) = 1.5 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS value. RHS. the left hand side of the equation is less than the right hand side of the equation, --- F. (t) RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
46
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ second guess saturation 0%
100% F(4) = 1.5 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS 1.50 1.57 value RHS as would occur when the guessed value for cumulative infiltration is too low, and should be higher. F (t) RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ second guess saturation 0%](http://slideplayer.com/slide/15073577/91/images/46/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+second+guess+saturation+0%25.jpg "100% F(4) = 1.5 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS value. RHS. as would occur when the guessed value for cumulative infiltration is too low, and should be higher. F. (t) RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
47
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ third guess saturation 0%
100% F(4) = 2 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS 1.50 1.57 value RHS 2.00 2 centimeters is tried on the third iteration, the right hand side equals --- F (t) RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ third guess saturation 0%](http://slideplayer.com/slide/15073577/91/images/47/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+third+guess+saturation+0%25.jpg "100% F(4) = 2 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS value. RHS centimeters is tried on the third iteration, the right hand side equals --- F. (t) RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
48
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ third guess saturation 0%
100% F(4) = 2 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS 1.50 1.57 value RHS 2.00 1.95 1.95 centimeters. [pause] Therefore, 2 centimeters is too high. [pause] F (t) RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ third guess saturation 0%](http://slideplayer.com/slide/15073577/91/images/48/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+third+guess+saturation+0%25.jpg "100% F(4) = 2 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS value. RHS centimeters. [pause] Therefore, 2 centimeters is too high. [pause] F. (t) RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
49
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ fourth guess saturation 0%
100% F(4) = 1.75 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS 1.50 1.57 value RHS 2.00 1.95 For the fourth iteration we’ll try 1.75 centimeters, --- 1.75 F (t) RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ fourth guess saturation 0%](http://slideplayer.com/slide/15073577/91/images/49/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+fourth+guess+saturation+0%25.jpg "100% F(4) = 1.75 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS value. RHS For the fourth iteration we’ll try 1.75 centimeters, F. (t) RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
50
Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ fourth guess saturation 0%
100% F(4) = 1.75 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS 1.50 1.57 value RHS 2.00 1.95 which is slightly too low. [pause] Our fifth iteration using --- 1.75 1.76 F (t) RHS LHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) RHS LHS F (4) 1+ fourth guess saturation 0%](http://slideplayer.com/slide/15073577/91/images/50/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+RHS+LHS+F+%284%29+1%2B+fourth+guess+saturation+0%25.jpg "100% F(4) = 1.75 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS value. RHS which is slightly too low. [pause] Our fifth iteration using F. (t) RHS. LHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
51
Find: f(4[hr]) [cm/hr] (t) LHS RHS F (4) 1+ fifth guess saturation 0%
100% F(4) = 1.80 [cm] η LHS RHS next F (t) Δθ 3.00 2.64 θi LHS 1.50 1.57 value RHS 2.00 1.95 1.80 centimeters, converges, so now we’ve found our cumulative infiltration. [pause] Returning to our equation --- 1.75 1.76 F (t) 1.80 1.80 - LHS 1.80 [cm] RHS F (4) F(4) = 0.24 [cm] [cm] * ln 1+ 5.6 [cm]
![Find: f(4[hr]) [cm/hr] (t) LHS RHS F (4) 1+ fifth guess saturation 0%](http://slideplayer.com/slide/15073577/91/images/51/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%28t%29+LHS+RHS+F+%284%29+1%2B+fifth+guess+saturation+0%25.jpg "100% F(4) = 1.80 [cm] η. LHS. RHS. next F. (t) Δθ θi. LHS value. RHS centimeters, converges, so now we’ve found our cumulative infiltration. [pause] Returning to our equation F. (t) LHS [cm] RHS. F. (4) F(4) = 0.24 [cm] [cm] * ln [cm]")
52
Find: f(4[hr]) [cm/hr] +1 ψ =23.90 [cm] ψ * Δθ θe = 0.321 Δθ = 0.2343
fifth guess saturation 0% 100% F(4) = 1.80 [cm] η LHS RHS next F Δθ 1.80 1.80 - θi hydraulic cm K=0.060 conductivity hr change in ψ =23.90 [cm] for the infiltration rate, we now know --- ψ * Δθ moisture f(4)=K +1 * content θe = 0.321 F(4) Δθ = cumulative infiltration F(4) =1.80 [cm] suction infiltration rate head
![Find: f(4[hr]) [cm/hr] +1 ψ =23.90 [cm] ψ * Δθ θe = Δθ =](http://slideplayer.com/slide/15073577/91/images/52/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%3D23.90+%5Bcm%5D+%CF%88+%2A+%CE%94%CE%B8+%CE%B8e+%3D+%CE%94%CE%B8+%3D.jpg "fifth. guess. saturation. 0% 100% F(4) = 1.80 [cm] η. LHS. RHS. next F. Δθ θi. hydraulic. cm. K= conductivity. hr. change in. ψ =23.90 [cm] for the infiltration rate, we now know --- ψ * Δθ. moisture. f(4)=K. +1. * content. θe = F(4) Δθ = cumulative. infiltration. F(4) =1.80 [cm] suction. infiltration. rate. head.")
53
Find: f(4[hr]) [cm/hr] +1 ψ =23.90 [cm] ψ * Δθ θe = 0.321 Δθ = 0.2343
fifth guess saturation 0% 100% F(4) = 1.80 [cm] η LHS RHS next F Δθ 1.80 1.80 - θi hydraulic cm K=0.060 conductivity hr change in ψ =23.90 [cm] the cumulative infiltration, after 4 hours, is 1.80 centimeters. [pause] And from earlier, we’ve already determined --- ψ * Δθ moisture f(4)=K +1 * content θe = 0.321 F(4) Δθ = cumulative infiltration F(4) =1.80 [cm] suction infiltration rate head
![Find: f(4[hr]) [cm/hr] +1 ψ =23.90 [cm] ψ * Δθ θe = Δθ =](http://slideplayer.com/slide/15073577/91/images/53/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%3D23.90+%5Bcm%5D+%CF%88+%2A+%CE%94%CE%B8+%CE%B8e+%3D+%CE%94%CE%B8+%3D.jpg "fifth. guess. saturation. 0% 100% F(4) = 1.80 [cm] η. LHS. RHS. next F. Δθ θi. hydraulic. cm. K= conductivity. hr. change in. ψ =23.90 [cm] the cumulative infiltration, after 4 hours, is 1.80 centimeters. [pause] And from earlier, we’ve already determined --- ψ * Δθ. moisture. f(4)=K. +1. * content. θe = F(4) Δθ = cumulative. infiltration. F(4) =1.80 [cm] suction. infiltration. rate. head.")
54
Find: f(4[hr]) [cm/hr] +1 ψ =23.90 [cm] ψ * Δθ θe = 0.321 Δθ = 0.2343
fifth guess saturation 0% 100% F(4) = 1.80 [cm] η LHS RHS next F Δθ 1.80 1.80 - θi hydraulic cm K=0.060 conductivity hr change in ψ =23.90 [cm] the values for hydraulic conductivity, suction head and change in moisture content. After making these substitutions, the infiltration rate equals, --- ψ * Δθ moisture f(4)=K +1 * content θe = 0.321 F(4) Δθ = cumulative infiltration F(4) =1.80 [cm] suction infiltration rate head
![Find: f(4[hr]) [cm/hr] +1 ψ =23.90 [cm] ψ * Δθ θe = Δθ =](http://slideplayer.com/slide/15073577/91/images/54/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%3D23.90+%5Bcm%5D+%CF%88+%2A+%CE%94%CE%B8+%CE%B8e+%3D+%CE%94%CE%B8+%3D.jpg "fifth. guess. saturation. 0% 100% F(4) = 1.80 [cm] η. LHS. RHS. next F. Δθ θi. hydraulic. cm. K= conductivity. hr. change in. ψ =23.90 [cm] the values for hydraulic conductivity, suction head and change in moisture content. After making these substitutions, the infiltration rate equals, --- ψ * Δθ. moisture. f(4)=K. +1. * content. θe = F(4) Δθ = cumulative. infiltration. F(4) =1.80 [cm] suction. infiltration. rate. head.")
55
Find: f(4[hr]) [cm/hr] +1 ψ =23.90 [cm] ψ * Δθ θe = 0.321 Δθ = 0.2343
fifth guess saturation 0% 100% F(4) = 1.80 [cm] η LHS RHS next F Δθ 1.80 1.80 - θi hydraulic cm K=0.060 conductivity hr change in ψ =23.90 [cm] 0.247 centimeters per hour. [pause] ψ * Δθ moisture f(4)=K +1 * content θe = 0.321 F(4) cm Δθ = f(4)=0.247 hr F(4) =1.80 [cm]
![Find: f(4[hr]) [cm/hr] +1 ψ =23.90 [cm] ψ * Δθ θe = Δθ =](http://slideplayer.com/slide/15073577/91/images/55/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%3D23.90+%5Bcm%5D+%CF%88+%2A+%CE%94%CE%B8+%CE%B8e+%3D+%CE%94%CE%B8+%3D.jpg "fifth. guess. saturation. 0% 100% F(4) = 1.80 [cm] η. LHS. RHS. next F. Δθ θi. hydraulic. cm. K= conductivity. hr. change in. ψ =23.90 [cm] centimeters per hour. [pause] ψ * Δθ. moisture. f(4)=K. +1. * content. θe = F(4) cm. Δθ = f(4)= hr. F(4) =1.80 [cm]")
56
Find: f(4[hr]) [cm/hr] +1 ψ =23.90 [cm] ψ * Δθ θe = 0.321 Δθ = 0.2343
fifth guess saturation 0% 100% F(4) = 1.80 [cm] η LHS RHS next F Δθ 1.80 1.80 - θi hydraulic cm K=0.060 conductivity hr 0.25 0.50 0.75 1.00 ψ =23.90 [cm] When reviewing the possible solutions, --- ψ * Δθ f(4)=K +1 * θe = 0.321 F(4) cm Δθ = f(4)=0.247 hr F(4) =1.80 [cm]
![Find: f(4[hr]) [cm/hr] +1 ψ =23.90 [cm] ψ * Δθ θe = Δθ =](http://slideplayer.com/slide/15073577/91/images/56/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%3D23.90+%5Bcm%5D+%CF%88+%2A+%CE%94%CE%B8+%CE%B8e+%3D+%CE%94%CE%B8+%3D.jpg "fifth. guess. saturation. 0% 100% F(4) = 1.80 [cm] η. LHS. RHS. next F. Δθ θi. hydraulic. cm. K= conductivity. hr ψ =23.90 [cm] When reviewing the possible solutions, --- ψ * Δθ. f(4)=K. +1. * θe = F(4) cm. Δθ = f(4)= hr. F(4) =1.80 [cm]")
57
Find: f(4[hr]) [cm/hr] +1 ψ =23.90 [cm] ψ * Δθ θe = 0.321 Δθ = 0.2343
fifth guess saturation 0% 100% F(4) = 1.80 [cm] η LHS RHS next F Δθ 1.80 1.80 - θi hydraulic cm K=0.060 conductivity hr 0.25 0.50 0.75 1.00 ψ =23.90 [cm] the answer is A. ψ * Δθ f(4)=K +1 * θe = 0.321 F(4) cm Δθ = f(4)=0.247 hr F(4) =1.80 [cm] AnswerA
![Find: f(4[hr]) [cm/hr] +1 ψ =23.90 [cm] ψ * Δθ θe = Δθ =](http://slideplayer.com/slide/15073577/91/images/57/Find%3A+f%284%5Bhr%5D%29+%5Bcm%2Fhr%5D+%2B1+%CF%88+%3D23.90+%5Bcm%5D+%CF%88+%2A+%CE%94%CE%B8+%CE%B8e+%3D+%CE%94%CE%B8+%3D.jpg "fifth. guess. saturation. 0% 100% F(4) = 1.80 [cm] η. LHS. RHS. next F. Δθ θi. hydraulic. cm. K= conductivity. hr ψ =23.90 [cm] the answer is A. ψ * Δθ. f(4)=K. +1. * θe = F(4) cm. Δθ = f(4)= hr. F(4) =1.80 [cm] AnswerA.")
58
? Index σ’v = Σ γ d γT=100 [lb/ft3] +γclay dclay 1
Find: σ’v at d = 30 feet (1+wc)*γw wc+(1/SG) σ’v = Σ γ d d Sand 10 ft γT=100 [lb/ft3] 100 [lb/ft3] 10 [ft] 20 ft Clay = γsand dsand +γclay dclay A W S V [ft3] W [lb] 40 ft text wc = 37% ? Δh 20 [ft] (5 [cm])2 * π/4
![Index σ’v = Σ γ d γT=100 [lb/ft3] +γclay dclay 1](http://slideplayer.com/slide/15073577/91/images/58/Index+%CF%83%E2%80%99v+%3D+%CE%A3+%CE%B3+d+%CE%B3T%3D100+%5Blb%2Fft3%5D+%2B%CE%B3clay+dclay+1.jpg "Find: σ’v at d = 30 feet. (1+wc)*γw. wc+(1/SG) σ’v = Σ γ d. d. Sand. 10 ft. γT=100 [lb/ft3] 100 [lb/ft3] 10 [ft] 20 ft. Clay. = γsand dsand. +γclay dclay. A. W. S. V [ft3] W [lb] 40 ft. text. wc = 37% Δh. 20 [ft] (5 [cm])2 * π/4.")
Similar presentations
![Find: max L [ft] 470 1,330 1,780 2,220 Pmin=50 [psi] hP=130 [ft] tank](/90/14720334/big_thumb.jpg "Find: max L [ft] 470 1,330 1,780 2,220 Pmin=50 [psi] hP=130 [ft] tank>")
![Find: y1 Q=400 [gpm] 44 Sand y2 y1 r1 r2 unconfined Q](/90/14737872/big_thumb.jpg "Find: y1 Q=400 [gpm] 44 Sand y2 y1 r1 r2 unconfined Q>")
![Find: QC [L/s] ,400 Δh=20 [m] Tank pipe A 1 pipe B Tank 2](/90/14830890/big_thumb.jpg "Find: QC [L/s] ,400 Δh=20 [m] Tank pipe A 1 pipe B Tank 2>")
![Find: DOB mg L A B C chloride= Stream A C Q [m3/s]](/90/14830900/big_thumb.jpg "Find: DOB mg L A B C chloride= Stream A C Q [m3/s]>")